1. ASM Handbook Committee. (1996). Fatigue and fracture (Vol. 19). Materials Park, OH: ASM International.
2. Bannantine, J. A., Comer, J. J., & Handrock, J. L. (1990). Fundamentals of metal fatigue analysis. Englewood Cliffs, NJ: Prentice Hall.
3. Bhatti, M. A. (2005). Fundamental finite element analysis and applications: with Mathematica and Matlab Computations. Hoboken, NJ: John Wiley & Sons.
4. Biswas, S., Paul, S., Ghosh, S. K., Ghosh, S., Mukherjee, A., & Bose, S. (2024). Advanced modal analysis of NACA 0012 airfoil wings: Unveiling higher-order deformation modes using ANSYS Workbench. In Innovative approaches in engineering research (Chapter 18, p. 169).
5. Budynas, R. G., & Nisbett, J. K. (2019). Shigley's mechanical engineering design (11th ed.). New York, NY: McGraw-Hill Education.
6. Cassia, M. T., da Silva, R. P., Paixão, C. S. S., Bertonha, R. S., & Cavichioli, F. A. (2014). Basecutter blades wear in quality of mechanized harvesting. Ciência Rural, 44(6), 987–993. https://doi.org/10.1590/S0103-84782014000600006
7. Classifications and designations of carbon and alloy steels. (1998). In J. R. Davis (Ed.), Metals handbook desk edition (2nd ed., pp. 203–219). Materials Park, OH: ASM International. https://doi.org/10.31399/asm.hb.mhde2.a0003092
8. Delgado-Bejarano, L., González-Sánchez, H., & García-Monsalve, G. (2024). Stress evaluation using finite elements in a manual agricultural tool. Ingeniería e Investigación, 44(2), e104844. https://doi.org/10.15446/ing.investig.104844
9. Deutsches Institut für Normung (DIN). (2006). DIN EN 10083-1:2006-10: Steels for quenching and tempering—Part 1: General technical delivery conditions. Berlin, Germany: Beuth Verlag.
10. Dossett, J. L., & Totten, G. E. (Eds.). (2014). Iron-carbon phase diagrams. In ASM handbook: Heat treating of irons and steels (Vol. 4D, pp. 543–544). Materials Park, OH: ASM International. https://doi.org/10.31399/asm.hb.v04d.a0005995
11. European Committee for Standardization. (2019). EN 10025-2:2019: Hot rolled products of structural steels—Part 2: Technical delivery conditions for non-alloy structural steels. Brussels, Belgium: Author.
12. Fadare, D. A., Fadara, T. G., & Akanbi, O. Y. (2011). Effect of heat treatment on mechanical properties and microstructure of NST 37-2 steel. Journal of Minerals and Materials Characterization and Engineering, 10(3), 299–308. https://doi.org/10.4236/jmmce.2011.103020
13. Gdoutos, E., & Konsta-Gdoutos, M. (2024). Compression, bending, torsion and multiaxial testing. In Mechanical testing of materials (pp. 35–61). Cham, Switzerland: Springer. https://doi.org/10.1007/978-3-031-45990-0_2
14. Hematian, R., Najafi, Gh., & Tavakoli Hashjin, T. (2011). Design, construction, and evaluation of new stem-cutting blades for sugarcane harvesting machines [Msc’s thesis]. Tarbiat Modares University, Tehran, Iran. [in Persian].
15. Hao, J., Liu, T., Zhao, J., Wang, X., Wu, Y., Bai, Z., & Ma, H. (2024). Research progress in surface wear resistance strengthening of soil contact components in tillage and sowing agricultural machinery equipment. Transactions of the Chinese Society of Agricultural Engineering, 40(11), 14–25. https://doi.org/10.11975/j.issn.1002-6819.202310140
16. Hunt, D. (2001). Farm power and machinery management (10th ed.). Ames, IA: Iowa State University Press.
17. Logan, D. L., (2012). A first course in the finite element method (5th ed.). Stamford, CT: Cengage Learning.
18. Ma, F. L. (2002). Virtual experimental analysis on the cleaning element in brush shape of the sugarcane harvester [Master's thesis, Guangxi University]. Nanning, China.
19. Magalhães, K. G. D., Soares, V. V., de Lima, L. F., de Moura, L. E. F., de Melo, K. M., & do Nascimento, J. H. O. (2024). Main processes of mechanization of biomass from sugarcane: An approach using Agriculture 4.0. In Multidisciplinary perspectives: Integrating knowledge (pp. 619–639). Seven Editora. https://doi.org/10.56238/sevened2024.007-046
20. Meng, Y., Li, S., Liu, Z., Tang, Z., & Yuan, H. (2005). Analysis of the Fatigue Life of Nonlinear Arrangement of Sugarcane Cleaning Element in Brush Shape. Journal of Computer-Aided Design & Computer Graphics, 17(2), 334–340.
21. Paixão, C. S. S., Voltarelli, M. A., de Oliveira, L. P., Bernache, L., & da Silva, R. P. (2019). Wear quantification of basal cutting knives in sugarcane harvesting. Engenharia Agrícola, 39(4), 498–503. https://doi.org/10.1590/1809-4430-eng.agric.v39n4p498-503/2019
22. Paulo Testa, J. V., Battistuzzi Martins, M., Carpes Marques Filho, A., Pereira Lanças, K., Lustosa Sobrinho, R., Finatto, T., Okla, M. K., & AbdElgawad, H. (2023). Continuous and impact cutting in mechanized sugarcane harvest: Quality, losses and impurities. Agriculture, 13(7), 1329. https://doi.org/10.3390/agriculture13071329
23. Pérez-Reyes, R. A., Daquinta-Gradaille, L. A., Bonilla-Rocha, J. D., Recarey-Morfa, C. A., Pérez-Olmo, C. B., & Gómez-Bravo, J. E. (2018). Performance of the base-cutter blades in the sugarcane harvester machines Case-IH 7000. Revista Ciencias Técnicas Agropecuarias, 27(3).
24. Rao, S. S. (2010). The finite element method in engineering (5th ed.). Oxford, England: Butterworth-Heinemann.
25. Rencis, J. J., & Grandin, H. T. (2021, July). A general structured procedure to solve machine design problems. Paper presented at the 2021 ASEE Virtual Annual Conference, Virtual Conference. https://doi.org/10.18260/1-2--36582
26. Rodríguez, J. S., Duran, J. F., Aguilar, Y., Pérez Alcázar, G. A., & Zambrano, O. A. (2020). Failure analysis in sugar cane cutter base blades. Engineering Failure Analysis, 112, 104503. https://doi.org/10.1016/j.engfailanal.2020.104503
27. SAE International. (2000). Chemical compositions of SAE alloy steels (SAE J404_200006). Warrendale, PA: Author. https://doi.org/10.4271/J404_200006
28. Santos, J. L. T., de Freitas, M., Li, B., & Trigo, T. P. (2003). Fatigue assessment of mechanical components under complex multiaxial loading. In A. Carpinteri, M. de Freitas, & A. Spagnoli (Eds.), Biaxial/multiaxial fatigue and fracture (Vol. 31, pp. 463–482). Oxford, England: Elsevier. https://doi.org/10.1016/S1566-1369(03)80025-0
29. Schijve, J. (2001). Fatigue of structures and materials. Dordrecht, The Netherlands: Kluwer Academic Publishers. https://doi.org/10.1007/0-306-48396-3
30. Srikanthnaik, J. (2024). Design and development of rotavator cutting tools using advanced mechanization technology for farm fields: A research review. International Journal of Agriculture Extension and Social Development, 7(2), 554–558. https://doi.org/10.33545/26180723.2024.v7.i2g.1804
31. Standardization Administration of the People's Republic of China. (2007). Spring steels (GB/T 1222-2007). Beijing, China: Standards Press of China.
32. Stephens, R. I., Fatemi, A., Stephens, R. R., & Fuchs, H. O. (2001). Metal fatigue in engineering (2nd ed.). New York, NY: John Wiley & Sons.
33. Suresh, S. (2004). Fatigue of materials (2nd ed.). Cambridge, England: Cambridge University Press. https://doi.org/10.1017/CBO9780511806575
34. Swe, K. M., Reza, M. N., Chowdhury, M., Ali, M., Islam, S., Lee, S.-H., Chung, S.-O., & Hong, S. J. (2022). Stress and fatigue analysis of major components under dynamic loads for a four-row tractor-mounted radish collector. Korean Journal of Agricultural Science, 49(2), 269–284. https://doi.org/10.7744/kjoas.20220024
35. Totten, G. E. (Ed.). (2017). ASM handbook: Friction, lubrication, and wear technology (Vol. 18). Materials Park, OH: ASM International. https://doi.org/10.31399/asm.hb.v18.9781627081924
36. Valinejad, A. (2004). Steel tables and standards, Steel Key (4th ed.). Tehran, Iran: Tarah Publishing. [In Persian].
37. Varani, M. (Ed.). (2024). Design, optimization and analysis of agricultural machinery. MDPI. https://doi.org/10.3390/books978-3-7258-1458-9
38. Voltarelli, M. A., Paixão, C. S. S., Zerbato, C., da Silva, R. P., & Gazzola, J. (2018). Failure mode and effect analysis (FMEA) in mechanized harvest of sugarcane billets. Engenharia Agrícola, 38(1), 88–96. https://doi.org/10.1590/1809-4430-Eng.Agric.v38n1p88-96/2018
39. Wulandana, R. (2024, October). Balancing theory, programming, and practical application for teaching of finite element analysis courses. Paper presented at the 2024 Fall ASEE Mid-Atlantic Section Conference, Farmingdale, NY. https://doi.org/10.18260/1-2--49428
40. Xie, L., Wang, J., Cheng, S., Zeng, B., & Yang, Z. (2018). Optimisation and finite element simulation of the chopping process for chopper sugarcane harvesting. Biosystems Engineering, 175, 16–26. https://doi.org/10.1016/j.biosystemseng.2018.08.004
41. Zhang, L., Jiang, B., Zhang, P., Yan, H., Xu, X., Liu, R., Tang, J., & Ren, C. (2023). Methods for fatigue-life estimation: A review of the current status and future trends. Nanotechnology and Precision Engineering, 6(2), 025001. https://doi.org/10.1063/10.0017255